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Large-Scale Testing to Study the Effects of Critical Parameters on the Aerodynamic Behavior of Long Span Bridges

机译:大规模试验研究临界参数对大跨度桥梁空气动力学行为的影响

摘要

Long-span bridges are flexible and therefore are sensitive to wind induced effects. One way to improve the stability of long span bridges against flutter is to use cross-sections that involve twin side-by-side decks. However, this can amplify responses due to vortex induced oscillations.Wind tunnel testing is a well-established practice to evaluate the stability of bridges against wind loads. In order to study the response of the prototype in laboratory, dynamic similarity requirements should be satisfied. One of the parameters that is normally violated in wind tunnel testing is Reynolds number. In this dissertation, the effects of Reynolds number on the aerodynamics of a double deck bridge were evaluated by measuring fluctuating forces on a motionless sectional model of a bridge at different wind speeds representing different Reynolds regimes. Also, the efficacy of vortex mitigation devices was evaluated at different Reynolds number regimes.One other parameter that is frequently ignored in wind tunnel studies is the correct simulation of turbulence characteristics. Due to the difficulties in simulating flow with large turbulence length scale on a sectional model, wind tunnel tests are often performed in smooth flow as a conservative approach. The validity of simplifying assumptions in calculation of buffeting loads, as the direct impact of turbulence, needs to be verified for twin deck bridges. The effects of turbulence characteristics were investigated by testing sectional models of a twin deck bridge under two different turbulent flow conditions.Not only the flow properties play an important role on the aerodynamic response of the bridge, but also the geometry of the cross section shape is expected to have significant effects. In this dissertation, the effects of deck details, such as width of the gap between the twin decks, and traffic barriers on the aerodynamic characteristics of a twin deck bridge were investigated, particularly on the vortex shedding forces with the aim of clarifying how these shape details can alter the wind induced responses.Finally, a summary of the issues that are involved in designing a dynamic test rig for high Reynolds number tests is given, using the studied cross section as an example.
机译:大跨度桥梁是灵活的,因此对风引起的影响敏感。改善大跨度桥梁抗晃动的稳定性的一种方法是使用包含两个并排甲板的横截面。但是,这会放大由涡流引起的振荡引起的响应。风洞测试是一种公认​​的实践,可以评估桥梁抵抗风荷载的稳定性。为了在实验室研究原型的响应,应满足动态相似性要求。雷诺数是风洞测试中通常违反的参数之一。本文通过在代表不同雷诺风速的不同风速下,通过测量桥梁静截面模型上的波动力来评估雷诺数对双层桥梁空气动力学的影响。此外,在不同的雷诺数体制下评估了减震装置的功效。在风洞研究中经常忽略的另一个参数是湍流特性的正确模拟。由于难以在截面模型上模拟大湍流尺度的流动,因此作为保守方法,风洞试验通常在平稳流动中进行。对于湍流的直接影响,在抖振载荷的计算中简化假设的有效性需要对双桥桥梁进行验证。通过在两种不同的湍流条件下测试双层桥截面模型来研究湍流特性的影响,不仅流动特性在桥梁的空气动力响应中起着重要作用,而且截面形状的几何形状也受到影响。预期会产生重大影响。在本文中,研究了甲板细节,例如双甲板之间的间隙宽度以及交通障碍对双甲板桥梁的空气动力学特性的影响,特别是对涡旋脱落力的影响,目的是阐明这些形状如何形成。最后,以研究的横截面为例,总结了设计用于高雷诺数测试的动态测试台所涉及的问题。

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    Kargarmoakhar Ramtin;

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  • 年度 2015
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